Impact of Temperature-dependent resistivity and thermal conduction on plasmoid Instabilities in current sheets in the solar corona
arXiv:1308.2476 · doi:10.1088/0004-637X/758/1/20
Abstract
In this paper we investigate, by means of two-dimensional magnetohydrodynamic simulations, the impact of temperature-dependent resistivity and thermal conduction on the development of plasmoid instabilities in reconnecting current sheets in the solar corona. We find that the plasma temperature in the current sheet region increases with time and it becomes greater than that in the inflow region. As secondary magnetic islands appear, the highest temperature is not always found at the reconnection -points, but also inside the secondary islands. One of the effects of anisotropic thermal conduction is to decrease the temperature of the reconnecting points and transfer the heat into the points, the plasmoids, where it gets trapped. In the cases with temperature-dependent magnetic diffusivity, , the decrease in plasma temperature at the points leads to: (i) increase in the magnetic diffusivity until the characteristic time for magnetic diffusion becomes comparable to that of thermal conduction; (ii) increase in the reconnection rate; and, (iii) more efficient conversion of magnetic energy into thermal energy and kinetic energy of bulk motions. These results provide further explanation of the rapid release of magnetic energy into heat and kinetic energy seen during flares and coronal mass ejections. In this work, we demonstrate that the consideration of anisotropic thermal conduction and Spitzer-type, temperature-dependent magnetic diffusivity, as in the real solar corona, are crucially important for explaining the occurrence of fast reconnection during solar eruptions.
References in corpus (4)
- Multiple Plasmoid Ejections and Associated Hard X-ray Bursts in the 2000 November 24 Flare
- Spontaneous current-layer fragmentation and cascading reconnection in solar flares: II. Relation to observations
- Plasmoids in Reconnecting Current Sheets: Solar and Terrestrial Contexts Compared
- Statistical Study of the Reconnection Rate in Solar Flares Observed with YOHKOH/SXT
Cited by in corpus (26)
- Fast magnetic reconnection in the solar chromosphere mediated by the plasmoid instability
- Blobs in recurring EUV jets
- Plasmoid Instability in Forming Current Sheets
- Heating mechanisms in the low solar atmosphere through magnetic reconnection in current sheets
- Observations of a Quasi-Periodic Fast Propagating Magnetosonic Wave in Multi-Wavelength and Its Interaction with Other Magnetic Structures
- A quasi-periodic fast-propagating magnetosonic wave associated with the eruption of a magnetic flux rope
- Plasmoid-mediated reconnection in solar UV bursts
- Coronal Quasi-periodic Fast-mode Propagating Wave Trains
- Extended theory of the Taylor problem in the plasmoid-unstable regime
- Subarcsecond blobs in flare-related coronal jets
- Cusp-shaped structure of a jet observed by IRIS and SDO
- The plasmoid instability during asymmetric inflow magnetic reconnection
- Forward Modeling of SDO/AIA and X-Ray Emission from a Simulated Flux Rope Ejection
- Plasma heating in a post eruption Current Sheet: a case study based on ultraviolet, soft, and hard X-ray data
- Numerical experiments on the detailed energy conversion and spectrum studies in a corona current sheet
- Magnetic reconnection mediated by hyper-resistive plasmoid instability
- Dispersively Formed Quasi-Periodic Fast Magnetosonic Wavefronts Due to the Eruption of a Nearby Mini-filament
- Plasmoid-fed prominence formation (PF) during flux rope eruption
- Transition-region explosive events produced by plasmoid instability
- Blob formation and ejection from the radiative inefficient accretion flow around massive black hole
- Magnetic Island Merging: Two-dimensional MHD Simulation and Test-Particle Modeling
- Merging plasmoids and nanojet-like ejections in a coronal current sheet
- Two-dimensional modeling of the tearing-mode-governed magnetic reconnection in the large-scale current sheet above the two-ribbon flare
- Boosting Magnetic Reconnection by Viscosity and Thermal Conduction
- How flux feeding causes eruptions of solar magnetic flux ropes with the hyperbolic flux tube configuration?
- High magnetic reconnection at different altitudes in the cool low solar atmosphere